GB2148768A - Powder surface welding method - Google Patents

Powder surface welding method Download PDF

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Publication number
GB2148768A
GB2148768A GB08426689A GB8426689A GB2148768A GB 2148768 A GB2148768 A GB 2148768A GB 08426689 A GB08426689 A GB 08426689A GB 8426689 A GB8426689 A GB 8426689A GB 2148768 A GB2148768 A GB 2148768A
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Prior art keywords
plasma
powder
base material
welding
gas
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GB08426689A
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GB2148768B (en
GB8426689D0 (en
Inventor
Yukou Takeuchi
Masaru Nagata
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Daido Steel Co Ltd
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Daido Steel Co Ltd
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Priority claimed from JP20057683A external-priority patent/JPS6092079A/en
Priority claimed from JP20105283A external-priority patent/JPS6096366A/en
Application filed by Daido Steel Co Ltd filed Critical Daido Steel Co Ltd
Publication of GB8426689D0 publication Critical patent/GB8426689D0/en
Publication of GB2148768A publication Critical patent/GB2148768A/en
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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K9/00Arc welding or cutting
    • B23K9/04Welding for other purposes than joining, e.g. built-up welding
    • B23K9/044Built-up welding on three-dimensional surfaces
    • B23K9/046Built-up welding on three-dimensional surfaces on surfaces of revolution
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K35/00Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
    • B23K35/02Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape
    • B23K35/0255Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape for use in welding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K9/00Arc welding or cutting
    • B23K9/24Features related to electrodes
    • B23K9/28Supporting devices for electrodes
    • B23K9/29Supporting devices adapted for making use of shielding means
    • B23K9/291Supporting devices adapted for making use of shielding means the shielding means being a gas
    • B23K9/296Supporting devices adapted for making use of shielding means the shielding means being a gas using non-consumable electrodes

Description

1 GB 2 148 768 A 1
SPECIFICATION Powder Surface Welding Method
This invention relates to a powder surface welding method applicable for build-up welding with powder, and more particularly to a powder surface welding method suitable for surfacing an engine valve 5 used in automobile vehicle or ship vessel and for other build-up weldings.
(2) Description of the Prior Art
For example, in the manufacture of engine valves for use in automobile vehicle, the surface welding to the valve face has frequently been performed in order to enhance the thermal resistance and abrasion resistance of the valve.
According to this surface welding method, however, it is required that the deposition to abase material 10 such as valve or the like is complete, the composition of the deposited metal is close to the composition of the base material prior to the surface welding, the shape of weld bead is good, the yield of deposited metal is high, and the like. In order to satisfy these requirements, it is attempted to adopt plasma arc welding with powder at present.
In this powder welding with a plasma torch, a plasma working gas is supplied from a space between a 15 bar electrode and an inner tube surrounding the bar electrode, while a surfacing powder is supplied from a space between the inner tube and an outer tube surrounding the inner tube and provided at its end with a plasma arc jetting nozzle into a plasma arc, whereby the surfacing powder is fused and surfaced onto a base material to be welded.
However, when using such a plasma torch for surfacing the base material with powder, large-size 20 particles tend to advance than small-size ones in the course of supplying the surfacing powder from a powder feeding means through a powder supply hose and the space between the inner and outer tubes in the torch into the plasma arc. Therefore, when the particle size distribution of the surfacing powder, welding speed, powder form or the like is unsuitable, if the supply of the surfacing powder is stopped in accordance with the completion of the surface welding, the cutting of powder supply becomes bad because the amount 25 of small-size particles flown at the last stage of the surface welding becomes larger as shown in Fig. la, and consequently a weld bead having a lower height is formed. Thus, there is obtained no desirable weld bead as shown in Fig. 1 b. Therefore, if it is intended to conduct ring-like welding such as the surface welding on the engine valve face for automobile vehicle, the last fused metal composed of fine powders piles on the first surfaced portion, so that the bead form in the piled portion is bad.
Further, there are caused troubles when the arrangement between the plasma torch and the base material to be surfaced such as the distance in up and down directions, offset amount in horizontal direction or the like, the welding speed and so on are unsuitable. For instance, when the distance between the plasma torch and the base material is too large, the plasma arc becomes unstable and also the lack of fusion is caused between the deposited metal and the base material. While, when the distance is too small, the form 35 of weld bead is poor. Alternatively, when the offset amount is unsuitable, molten metal of the surfacing powder is not well deposited on the face of the base metal to be surfaced and may fall down from the face.
The invention is to solve the aforementioned problems of the prior art and to provide a powder welding method which is considerably good in the form of weld bead by plasma arc welding with powder and in the fusion state between deposited metal and base material to be surfaced, and particularly can give considerably good bead form and fusion state even when forming a ring- like weld portion at a face of an engine valve for automobile vehicle.
According to the invention, there is the provision of a method of welding a base material to be surfaced with a surfacing powder by means of a plasma torch wherein a plasma working gas is supplied from a space between a bar electrode and inner tube surrounding the bar electrode and the surfacing powder is 45 supplied from a space between the inner tube and an outer tube surrounding the inner tube and provided at its end with a plasma arc jetting nozzle into a plasma arc while rotating the base material, characterized in that said surfacing powder contains not less than 95% of powder having a particle size of -60 mesh to +250 mesh, and the welding is carried out at a welding speed of not less than 3.8 mm/sec.
In the preferred embodiment of the invention, the surfacing powder is one produced by gas atomization or gas-water atomization, the particle size is within a range of -100 mesh to +250 mesh, the welding is carried out at a welding speed of not less than 4 mm/sec without weaving the plasma torch, and a distance (L, mm) between the end of the plasma arc jetting nozzle and the base material is within a range of 0.5 Ds +6:5L:5Ds+8 (wherein Ds is an opening diameter (mm) of the plasma are jetting nozzle) and an offset angle (0) of axial center of the torch with respect to the rotational center of the base material is within a 55 range of 7':50520' at a delay angle side.
The invention will now be described in detail with reference to the accompanying drawing, wherein:
Figs. 1 a and 1 b are schematic views illustrating a change in the height of weld bead, respectively; Fig. 2 is a longitudinal sectional view of the plasma torch for use in the powder surface welding method according to the invention; gas; Fig. 3 is a perspective view of the flow regulating member for plasma working gas used in Fig. 2; Fig. 4 is a perspective view of another embodiment of the flow regulating member for plasma working 2 GB 2 148 768 A 2 Fig. 5 is a longitudinally sectional view of the backing member used in the invention; Figs. 6a and 6b are schematic views illustrating the position relation between the side edge of the base material and the side edge of the backing member respectively; Fig. 7 is a schematic view illustrating the deformation of weld portion atthe end of the valve face; Fig. 8 is a schematically plan view illustrating the position relation between the plasma torch and the base material; Fig. 9 is an enlarged sectional view of the nozzle part in the plasma torch shown in Fig. 2; and Fig. 1 Oa to 1 Od are schematic view illustrating the form of weld bead, respectively.
In Fig. 2 is shown an embodiment of the plasma torch for use in the powder surface welding method according to the invention together with an engine valve as a base material to be surfaced. This plasma 10 torch 1 is provided at its center with a bar electrode 2 connected to a negative pole side of a power source (not shown), and an inner tube 3 concentrically surrounding the bar electrode 2 at a certain interval. In the illustrated embodiment, the inner tube 3 is provided at its lower end with a threaded tip 4, but the inner tube 3 may be integrally united with the tip 4. A cooling water passage 5 is formed in the interior of the inner tube 3 and the tip 4, respectively, while a passage for plasma working gas 6 is defined between the bar electrode 15 2 and the inner tube 3.
In the plasma working gas passage 6 defined between the bar electrode 2 and the inner tube 3 is disposed a flow regulating member 8 provided with plural holes 7 for passing the plasma working gas. Moreover, these holes 7 maybe formed in the flow regulating member 8 at a circumferentially equal interval in a straight form as shown by a dotted line in Fig. 3 or in a spiral form as shown by a dotted line in 20 Fig. 4. In any case, the flow regulating member 8 serves to regulate the flow of the plasma working gas supplied from the upper part of the torch in an arrow direction to thereby uniformize the flow of the plasma working gas at its horizontal section. As a result, the fusion of a surfacing powder as well as the adhesion of a deposited metal to a base material are also uniformized as mentioned later. And also, the flow regulating member 8 acts as a retainer for the bar electrode 2, which always holds the bar electrode 2 at a concentric 25 state with respect to the inner tube 3, resulting in the prevention of uneven loss of bar electrode 2.
In the lower end of the inner tube 3 (the trip 4 in the illustrated embodiment) is formed a plasma arc restraining nozzle 9. Further, an outer tube 11 is arranged around the outer periphery of the inner tube 3 at a certain space. At the lower end of the outer tube 11 is formed a plasma arc jetting nozzle 12. Between the inner tube 3 and the outer tube 11 is defined a powder feeding passage 13, whereby a surfacing powder 14 30 can be supplied together with a powder carrying gas from a powder feeding device (not shown) to a plasma arc 10. Moreover, a cooling water passage 15 is formed in the interior of the outer tube 11 for cooling the nozzle 12.
Further, an annularflow regulating member 16 for shield gas is disposed nearthe lower portion of the outertube 11 at a concentric state with the plasma arc jetting nozzle 12, which serves to uniformly and evenly shield the surrounding of the plasma arc 10 with a shield gas supplied through a shield gas passage 17. In this case, the shield gas flow regulating member 16 is located inward from the opening end of the plasma arcjetting nozzle 12 in orderto preventthe ununiform or insufficient supply of the shield gas due to the increase of permeation resistance based on the adhesion of splushes of powder and fused metal to the flow regulating member 16 during the surfacing, whereby the adhesion of splushes can be prevented to 40 always hold the permeation resistance of the flow regulating member 16 at constant and to well develop the shielding effect against the plasma arc. Moreover, the shield gas flow regulating member 16 is made from a laminated net body, a sintered body of metal or ceramic having an appropriate permeability (density), and the like.
Beneath the plasma torch 1 having the above mentioned structure is arranged a base material 18 to be 45 surfaced such as an engine valve for automobile vehicle, which is rotatable at a state held by a backing member 20.
In Fig. 5 is shown a structure of the backing member 20, wherein the base material (valve) 18 is held at its bottom side by a backing disc 21. This backing disc 21 is fixed to a backing body 22 by means of bolts 23.
Further, a cooling space 24 is defined between the backing disc 21 and the backing body 22, at where a 50 cooling water is circulated through cooling water passages 25,26 formed in the backing body 22.
The backing body 22 is fitted into a ring block 28 through plural 0-rings 27. The ring block 28 is fixed to a supporting arm 29 for supporting the backing member 20.
Further, a back plate 20 is disposed on the lower side of the backing body 22, while a shaft 31 is integrally united with the lower end of the backing body 22 and connected to a rotary driving means (not 55 shown) in such a manner that the backing member 20 is rotated in an arrow direction at a state holding the base material 18.
Moreover, as shown in Fig. 6a and 6b, the base material 18 is attached to the backing member 20 so as to satisfy the following relationship:
K51.01-1, w:52.0H, a<900 60 wherein H is a height of the side edge of the base material 18, h is a height of he backing member 20 (in the illustrated embodiment, backing disc 21) protruding from the bottom of the base material 18 along the side edge thereof, w is a width of the backing member 20 protruding from the side edge of the base material 18, 3 GB 2 148 768 A 3 and a is an inclination angle of a side edge of the backing member 20. Particularly, Fig. 6b shows a case of h=O, w=0 and a=00.
If the side edge portion of the backing member 20 largely produces from the side edge of the base material 18 so as not to satisfy the above relationships, the flows of the plasma working gas and the powder carrying gas pass along the surface of the base material 18 and come into collision with the side edge surface of the backing member 20 to cause disordering of these gas flows. As a result, a fused deposition metal 35 (shown in Fig. 2) surfaced on the face of the base material 18 is flown to the central side (axial side) of the base material 18 by the disordered plasma arc flow, so that an end portion of a deposited metal after the solidification exhibits a deformed shape as shown in Fig. 7.
On the.other hand, the case that the base material 18 is locally supported bythe backing member 20 10 (i.e. h and w are negative values), and the case thatthe side edge of the backing member 20 is inclined inward (i.e. a is a negative value) are included in the invention.
In the practice of the powder surface welding according to the invention, a negative pole of a power source (not shown) is connected to the bar electrode 2 and a positive pole thereof is connected to the base material 18, whereby a plasma arc 10 is produced between the bar electrode 2 and the base material 18, and 15 atthe same time the surfacing powder 14 supplied into the plasma arc 10 together with the powder carrying gas is deposited on the surface of the base material 18 (valve face) at a fused state.
Since the flow regulating member 8 for the plasma working gas is disposed between the bar electrode 2 and the inner tube 3, the plasma working gas becomes even and uniform at its horizontal section to enhance the concentricity of the plasma gas to that the supply of the surfacing powder 14 is uniformized at 20 the horizontal section and the uneven loss of the bar electrode 2 is prevented to achieve the good surface welding. Further, the plasma arc 10 and a portion of the base material 18 to be surfaced are effectively shielded from exterior by the shield gas, whereby a good suface-weided layer can be obtained.
As the electrode in the plasma torch is used a bar electrode made, for example, of a high melting metal (or alloy) such as tungsten or the like. In this case, the whole of the electrode may be made from the high melting material such as tungsten or the like, or the electrode may consist of a plasma arc generating portion made of the high melting portion and the other remaining portion made of an electrically conductive water-cooled pipe or the like.
As the surfacing powder, use may be made of thermal resistant alloys and abrasion resistant alloys, particularly Co-based alloys such as stellite, Ni-based alloys such as colmonoy, Fe-based alloys such as 30 FIVIS, and so on. When the surfacing powder contains a great amount of large-size particles, the non-fusing of the powder is unfavorably caused in the surface welding with the plasma arc, while when the small-size particles are too large in the powder, the amount of the powder splushed becomes large to reduce the yield, and the cutting of the small-size particle is poor at the last stage of the surface welding because the supply of small-size particles is apt to be delayed as compared with the supply of large-size particles and consequently a low weld bead as shown in Fig. 1 a is formed to deteriorate the form of weld bead. On the other hand, when the welding speed is too slow, good weld bead form can not be obtained. For these reasons, according to the invention, the welding is carried out at a welding speed of not less than 3.8 mlsec by using a surfacing powder containing not less than 95% of powder having a particle size of -60' mesh to +250 mesh.
In orderto provide good flowing of the surfacing powder in the plasma arctogetherwith the powder carrying gas, it is desirable to use powders obtained by a powder producing process with a cooling rate slower than that of liquid atomization process, such as gas atomizing or gas-water atomizing. That is, the powder obtained by the liquied atomization is frequently irregular in the shape, ununiform in the supplying and insufficient in the fusion by plasma arc, while almost of the powders obtained by the gas atomization or 45 gas-water atomization process are close to spherical shape and relatively regular, so that they are smoothly supplied and sufficiently fused by the plasma arc to provide a considerably good weld bead form.
As the surfacing powder satisfying the above requirements, there are powders produced by gas-liquied mixed gas atomization as disclosed in Japanese Patent Application Publication No. 53-11269 and No.
53-26591, which are preferably used in the invention.
In the operation of the aforesaid plasma torch, the powder surface welding is performed under such conditions that as shown in Fig. 8, a distance (L, mm) between the end of the plasma arc jetting nozzle 12 and the base material 18 is within a range of 0.5Ds+6:5L:SDs+8, wherein Ds is a diameter (mm) of the nozzle 12, and an offset angle (e) of axial center of the plasma torch with respect to the rotational center of the base material 18 is 70:50:5200 at a delay angle side or a side opposite to the rotational direction of the base material shown by an arrow A.
Wfien the distance L exceeds the upper limit, the distance between the bar electrode 2 connected to the negative pole of the power source and the base material 18 connected to the positive pole of the power source becomes too long and also the plasma arc 10 is unstable, resulting in the bad weld bead form and the lack of fusion against the base material 18. While, when the distance L is less than the lower limit, the 60 plasma arc 10 strongly tends to throw away the fused metal from the portion of the base material to be surfaced, resulting in the deterioration of the weld bead form. On the other hand, when the offset angle 0 is less than 7', the weld bead form is poor and the lack of fusion against the base material 18 is caused, while when the offset angle 8 exceeds 20', the fused metal falls down on the base material 18 to deteriorate the weld bead form and to cause the lack of fusion.
4 GB 2 148 768 A 4 Asshownin Fig. 9, it is preferable that the powder surface welding is per- formed so as to satisfy the following relations:
Dr=(0.6-0.9)xDs, Tr=(0.9-1.1)x1Dr, DetO.9xDr wherein De is a diameter (mm) of the bar electrode 2, Dr is an opening diameter (mm) of the plasma arc restraining nozzle 9, Tr is a nozzle thickness (mm) of the nozzle 9, and Ds is an opening diameter (mm) of the plasma arc jetting nozzle 12. In this case, the stabilization and concentricity of the plasma arc are enhanced to sufficiently fuse the surfacing powder, whereby a good surface weld layer can be obtained in a high yield.
Moreover, it is desirable that the current density of the bar electrode 2 is not more than 13.5A/mm'. If 10 the current density is too excessive, the consumption of the electrode becomes large and the life thereof is shortened.
As the plasma working gas is used an inert gas such as Ar gas, N2 gas, mixed gas thereof or the like. When the amount of the plasma working gas used is too small, it is difficult to form a stable plasma arc, while when it is too large, the fused metal is thrown away to deteriorate the weld bead form. Therefore, according to the invention, the amount of the plasma working gas used (1/min.mm') is controlled to satisfy (0.03-0.13) x'nl)r2, wherein Dr is the opening diameter (mm) of the plasma arc restraining nozzle 9.
According to the invention, the inert gas as described above is also used as a powder carrying gas. if the amount of the powder carrying gas used is too small, it is difficult to supply the surfacing powder, while if it is too large, the fused metal is thrown away to deteriorate the weld bead form. Therefore, according to 20 the invention, the powder carrying gas is used in an amount of not more than 0.4 I/min, preferably 0.1-0.3 I/min based on 1 g/min of the surfacing powder supplied.
Furthermore, in order to obtain a good form of weld bead, the surface welding is carried out at a welding speed of not less than 3.8 mm/sec, preferably not less than 4 mm/sec. When the welding speed is less than 3.8 mm/sec, the good weld bead can not be formed.
Particularly, when the surface welding is applied to the valve face for automobile engine, it is desirable to conduct the welding without weaving in order to provide a good form of weld bead.
The invention will be explained more clearly by means of the following examples together with comparative examples.
Example 1 30
In this example, a face of an exhaust valve for automobile engine (diameter: 50 mm) was subjected to a surface welding with a surfacing powder (produced by gas atomization of Stellite #12) having a particle size distribution as shown in the following Table 1 at a welding speed shown in Table 1 by using the plasma torch shown in Fig. 2 under a main current of 100 A and an arc voltage of 36 V.
(31 TABLE 1
Particle size distribution Run -100 mesh -150 mesh -200 mesh -250 mesh Welding speed No. -100 mesh -+150 mesh -+200 mesh -+250 mesh -+325 mesh (mm/sec) Bead form 1 5 25 30 40 0 12.5 2 0 35 35 30 0 0 r r E.2 3 0 31 35 30 4 0 r 0 C.) a) - > 11 r 4 4 25 36 30 5 0 a) Cl. (D 11 E ' 5 0 45 30 25 0 0 M 0 X 6 4 21 15 55 5 0 r-7-r 0 55 45 0 0 @ k 8 10 30 30 30 0 X m Cl m E 9 5 35 35 15 10 11 X CL 0 1 - 1 - r E x - U 10 0 40 30 20 10 J_ X 0 W Note: @)... excellent (Fig. 1 Oa), 0... good (Fig. 1 Ob or 1 Oc), A... slightly good, X...bad (Fig. 10d) M 6 GB 2 148 768 A 6 As apparent from Table 1, when the surface welding is carried out at a welding speed of notlessthan 3.8 mm/sec with a surfacing powder containing notlessthan95% of powderwitha particlesizeof -100 mesh -+250 mesh, the resulting weld bead is good in the form. However, when the surfacing powder contains a large amount of smaller-size particles or larger-size particles as shown in Comparative Examples, the good weld bead can not be obtained.
Example 2
In this example, a face of an exhaustvalve for automobile engine (diameter: 50 mm) was subjected to a surface welding using the plasma torch of Fig. 2 under the conditions as shown in the following Table 2. In this case, the nozzle diameter Ds (mm) of the plasma arc jetting nozzle 12, the distance L (mm) between the end of the plasma torch and the base material 18 and the offset angle 0 were changed as shown in the following Table 3 to examine the resulting weld bead form and the fusion state against the base material 18. The thus obtained results are also shown in Table 3.
TABLE 2
Arc welding current 115A Arc welding voltage 38V Plasma working gas Ar Powder carrying gas Ar Surfacing powder Stellite #6 (- 100 -+250 mesh: not less than 95%) Weaving of plasma torch none Run No.
m E c: 0.9 0 r_ CJ c) CO r 2 (D c- = E ' M 0 X W 4.0 3.2 4.0 4.0 4.0 4.0 9.5 10.5 9.0 7.5 6.0 13.0 1 2 3 4 5 6 7 8 9 TABLE 3
Offset angle E) (0) Nozzle diameter D (mm) 4.0 4.0 4.0 4.0 Distance L (m m) 9.0 10.0 11.0 8.0 Welding speed (Mm/sec) 8 8 8 8 Weld bead form 0 0 Fusion state 0 0 0 0 0 @ 0 X X X 0 X 0 Q).> (D "E w E cc E x 10 0 LU 0 X X X X 1 X1 4.0 4.0 i 11.0 25 1 7.0 1 251 8 Note: Symbols 0, A and X are the same as in Table 1.
As apparent from Table 3, when the distance L between the plasma torch end and the base material and the offset angle E) are within the ranges defined in the invention, both the weld bead form and fusion state are satisfactory, while when the distance Land the angle 0 are outside the defined ranges, satisfactory weld 20 bead form and fusion state can not be obtained.
7 G B 2 148 768 A 7 Example 3
The surface welding of an exhaust valve face for automobile engine was carried out in the same manner as described in Example 2 under the conditions of Table 2, except that the amount of the plasma working gas used, the opening diameter of the plasma arc restraining nozzle, the amount of the surfacing powder used, the amount of the powder carrying gas used and the welding speed were changed as shown in the following Table 4. The form of weld bead was visually observed to obtain a result as shown in Table 4.
00 TABLE 4
Run No.
:Ei 0 0 r_ > C: (D CL (D E (0 0 X W a) -;-, Q) 0 0.
0 E CL m E x 0 W Opening diameter Amount of Amount of plasma of plasma are Amount of powder Welding working gas restraining nozzle surfacing powder earring gas speed Form of Olmin) (MM) (g/min) 0/min) (mm/sec) weld bead 1.0 3.5 18.6 5.5 9.0 @ 0.4 3.5 18.6 2.5 9.0 0 0.3 2.8 10.0 1.5 9.0 0 2.7 7.0 25.0 8.0 12.1 0 2.8 6.0 25.0 4.0 12.1 0 1.96 5.0 25.0 2.5 12.1 0 1.54 3.5 18.6 5.5 8.0 X 0.8 7.0 25.0 7.0 8.0 poor fusion 1.2 3.5 18.6 8.0 9.0 X 2.8 6.0 25.0 12.5 12.1 X 1 2 3 4 5 6 11 12 13 14 Note: Symbols @), 0 and X are the same as in Table 1.
G) C0 N) is 00 j 0) 00 C0 9 GB 2 148 768 A 9 As apparent from Table 4, when the amount of the plasma working gas is too small, poor fusion is produced in the weld part, while when the amount of the plasma working gas and/or the powder carrying gas is too large, the fused metal is thrown away to deteriorate the weld bead form.
Example 4
The surface welding of an exhaust valve face for automobile engine (diameter: 50 mm, height of side edge: 2mm) was carried out in the same manner as described in Example 2 under the conditions of Table 2, except that the height h and width w of the backing member 20 protruding from the bottom of the base material 18 and the inclination angle a of side edge of the backing member 20 were changed as shown in the following Table 5. The form of weld bead was examined to obtain a result as shown in Table 5.
TABLE 5 10
Backing member Protruding Protruding Run height width No. h (mm) W (mm) 1 1.5 1.9 C: r iES.2 2 1.8 3.8 0 r_ 0 a) > r 3 1.0 1.0 a) 0. (D E 4 0 0 M 0 X LU 5 0 0 2.2 1.8 12 1.5 4.2 (a r).
m E C. 0 13 1.2 1.8 E x 0 W 14 2.5 4.5 2.2 1.8 Inclination angle a (0) Welding speed Form of (mm/sec) weld bead 500 @ @ @ 0 500 (D 500 X 11 X 11 X 11 X 11 X 0 0 0 -45 0 0 0 Note: Symbols @, 0 and X are the same as in Table 1.
As apparent from Table 5, when the protruding height and width of the backing member 20 and the inclination angle of the side edge thereof are too large, the good weld bead form can not be obtained 15 satisfactorily.
Example 5
A disc having a diameter of 30 mm and a thickness of 10 mm was subjected to a surface welding with 30% Cr-2% Fe-Ni powder as a surfacing powder 4 in a plasma torch having the structure shown in Fig. 2 and a specification as shown in the following Table 6. The life of the bar electrode 2 was measured to obtain 20 a resultas shown in Table 6.
0 Run No.
1 2 3 4 6 J 7 1 TABLE 6
Opening diameter Opening diameter of plasma are Nozzle thickness Diameter of of plasma arc Current Life of restraining nozzle 9 of nozzle 9 bar electrode 2 jetting nozzle 12 density electrode Dr (mm) Tr (mm) De (mm) Ds (mm) (Almm') (H r) 3.5 3.2 4.8 4.0 8.7 203 3.5 3.2 4.0 4.0 10.5 120 6.0 6.0 5.6 7.0 8.1 320 6.0 6.0 5.6 7.0 12.3 150 6.0 6.0 5.6 7.0 14.4 103 6.5 7.2 5.6 7.0 13.1 36 2.0 1.2 3.2 4.0 9.8 8 m C: C:
5,2 0 r_ c) (D > D E CO 0 X W (D CL E.k E 0 0 M CJ - X W 11 GB 2 148 768 A As described above, in the powder surface welding method according to the invention, the form of weld bead is considerably good and also the fusion state between the deposited metal and the base material to be surfaced is remarkably good. Particularly, even when the powder surface welding is applied to a ring-like portion to be surfaced such as engine valve face for automobile vehicle or the like, good weld bead form and fusion state can be obtained satisfactorily. Further, the invention makes possible to stabilize the plasma arc and enhance the concentricity of the plasma arc, so that the consumption of the electrode is small, and the life of the electrode is considerably prolonged, and the f low of the surfacing powder is uniformized to make the amount of the deposited metal constant.

Claims (19)

1. A method of welding a base material to be surfaced with a surfacing powder by means of a plasma 10 torch wherein a plasma working gas is supplied from a space between a bar electrode and an inner tube surrounding the bar electrode and the surfacing powder is supplied from a space between the innertube and an outer tube surrounding the inner tube and provided at its end with a plasma arc jetting nozzle into a plasma arc while rotating the base material, characterized in that said surfacing powder contains not less than 95% of powder having a particle size of -60 mesh to +250 mesh, and the welding is carried out at a 15 welding speed of not less than 3.8 mm/sec.
2. The method according to claim 1, wherein said surfacing powder is produced by gas atomization process.
3. The method according to claim 1, wherein said surfacing powder is produced by gas-water atomization process.
4. The method according to claim 1, wherein said surfacing powder is selected from Co-base alloys, Ni-base alloys and Fe-base alloys.
5. The method according to claim 1, wherein said particle size is within a range of -100 mesh to +250 mesh.
6. The method according to claim 1, wherein said welding speed is not less than 4 mm/sec.
7. The method according to claim 1, wherein said base material is an engine valve for automobile vehicle or ship vessel.
8. The method according to claim 1, wherein said welding is carried out without weaving said plasma torch. 30
9. The method according to claim 1, wherein a flow regulating member provided with plural holes for 30 passing the plasma working gas is disposed between said bar electrode and said innertube.
10. The method according to claim 9, wherein said holes of the flow regulating member are arranged in a straight form at a circumferentially equal interval.
11. The method according to claim 9, wherein said holes of the flow regulating member are arranged in a spiral format a circumferentially equal interval.
12. The method according to claim 1, wherein said plasma torch further comprises a shield gas passage disposed outside the outer tube surrounding the plasma are and provided at the end with a plasma arc jetting nozzle, and an annular flow regulating member forthe shield gas disposed in said shield gas passage near the lower portion of the outertube.
13. The method according to claim 1, wherein a distance L (mm) between the end of said plasma arc 40 jetting nozzle and said base material is within a range of 0.5Ds+6t5L:5Ds+ 8 (wherein Ds is an opening diameter (mm) of the plasma are jetting nozzle) and an offset angle (0) of the axial center of said plasma torch with respect to the rotational canter of said base material is within a range of 7'2502520'at a delay angle side.
14. The method according to claim 1, wherein said plasma torch satisfies the following relationships: 45 Dr=(0.6-0.9)x13s, Tr=(0.9-1.1)x[Dr, DetO.9xDr in which Dr is an opening diameter (mm) of a plasma arc restraining nozzle formed in the end of the inner 50 tube, Ds is an opening diameter (mm) of the plasma are jetting nozzle, Tr is a nozzle thickness (mm) of the 50 plasma arc restraining nozzle, and De is a diameter (mm) of the bar electrode.
15. The method according to claim 1, wherein said bar electrode has a current density of not more than 13.5 AlmM2.
16. The method according to claim 1, wherein an amount of said plasma working gas used (I/min MM2) is (0.03-0.13)X4'TiDr 2 in which Dr is an opening diameter of the plasma are restraining nozzle.
17. The method according to claim 1, wherein said surfacing powder is used together with not more than 0.4 Ilmin of a powder carrying gas based on lg/min of said powder.
18. The method according to claim 1, wherein said base material is held by a backing member satisfying the following relations:
h:51.0 H, wt52.0 H, a:590 12 GB 2 148 768 A 12 in which H is a height of a side edge face of said base material, h is a height of the backing member protruding from the bottom of the base member, w is a width of the backing member protruding from the side edge face of the base material and a is an inclination angle of a side edge face of the backing member.
19. A method of welding a base material to be surfaced with a surfacing powder by means of a plasma torch substantially as hereinbefore described with reference to the accompanying drawings.
Printed in the United Kingdom for Her Majesty's Stationery Office, Demand No. 8818935, 611985. Contractor's Code No. 6378. Published by the Patent Office, 25 Southampton Buildings, London, WC2A lAY, from which copies may be obtained.
GB08426689A 1983-10-26 1984-10-22 Powder surface welding method Expired GB2148768B (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP20057683A JPS6092079A (en) 1983-10-26 1983-10-26 Powder build up welding
JP20105283A JPS6096366A (en) 1983-10-28 1983-10-28 Powder build-up welding method

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GB8426689D0 GB8426689D0 (en) 1984-11-28
GB2148768A true GB2148768A (en) 1985-06-05
GB2148768B GB2148768B (en) 1987-07-15

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015181075A1 (en) * 2014-05-31 2015-12-03 Element Six Gmbh Thermal spray assembly and method for using it
WO2015181076A1 (en) * 2014-05-31 2015-12-03 Element Six Gmbh Thermal spray assembly and method for using it

Families Citing this family (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4853250A (en) * 1988-05-11 1989-08-01 Universite De Sherbrooke Process of depositing particulate material on a substrate
US4990739A (en) * 1989-07-07 1991-02-05 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Plasma gun with coaxial powder feed and adjustable cathode
DE4030541C2 (en) * 1990-09-27 1997-10-02 Dilthey Ulrich Prof Dr Ing Burner for coating base materials with powdered filler materials
US5217746A (en) * 1990-12-13 1993-06-08 Fisher-Barton Inc. Method for minimizing decarburization and other high temperature oxygen reactions in a plasma sprayed material
US5293026A (en) * 1991-01-28 1994-03-08 Eaton Corporation Hardsurfacing material for engine components and method for depositing same
US5233153A (en) * 1992-01-10 1993-08-03 Edo Corporation Method of plasma spraying of polymer compositions onto a target surface
US5436426A (en) * 1993-04-19 1995-07-25 Sulzer Metco (Us), Inc. Fixture and method for cooling tubular substrate during thermal spraying
US5466905A (en) * 1994-04-05 1995-11-14 General Electric Company Low electric D.C., low time rate polarity reversing arc welding method
US5464958A (en) * 1994-04-05 1995-11-07 General Electric Company Arc welding apparatus with variable polarity reversing device and control
US5545873A (en) * 1994-11-09 1996-08-13 Howmet Corporation Variable control of weld torch parameters
SE9603486D0 (en) * 1996-09-23 1996-09-23 Hoeganaes Ab Surface coating method
US6084196A (en) * 1998-02-25 2000-07-04 General Electric Company Elevated-temperature, plasma-transferred arc welding of nickel-base superalloy articles
SE527841C2 (en) * 2003-11-07 2006-06-20 Esab Ab Welding method Apparatus and software for gas metal arc welding with continuously advanced electrode
US20060168808A1 (en) * 2005-02-03 2006-08-03 United Technologies Corporation Plasma ARC weld repair of IN100 material
TWI352368B (en) * 2007-09-21 2011-11-11 Ind Tech Res Inst Plasma head and plasma-discharging device using th
US20090289209A1 (en) * 2008-05-01 2009-11-26 Vecto Gray Inc. Process For Hardfacing of Bore and Seat Face Intersection on Gate Valve
DE102012213453A1 (en) * 2012-07-31 2014-02-06 Siemens Aktiengesellschaft Torch for tungsten inert gas welding
US9144148B2 (en) 2013-07-25 2015-09-22 Hypertherm, Inc. Devices for gas cooling plasma arc torches and related systems and methods
DE102014209847A1 (en) * 2014-05-23 2015-11-26 Siemens Aktiengesellschaft Method for repairing an airfoil

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB718866A (en) * 1952-04-01 1954-11-24 Air Reduction Improvements in method of hard surfacing
GB778785A (en) * 1954-02-18 1957-07-10 Union Carbide & Carbon Corp Method of applying hard-facing metals
GB1293229A (en) * 1970-05-01 1972-10-18 North American Rockwell Plasma generating method and means
GB2026478A (en) * 1978-06-26 1980-02-06 Dynamit Nobel Ag Process for producing alkali metal salts of aryl pyruvic acids
GB1585207A (en) * 1976-10-28 1981-02-25 Eaton Corp Plasma arc torch
GB2096515A (en) * 1981-04-09 1982-10-20 Carrier Corp Pulsed direct current arc welding

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE434463C (en) * 1925-03-21 1926-09-27 A Hering Ag Arc welding device
DE1433791A1 (en) * 1963-09-01 1969-01-09 Gerhard Kubera Process for the production of highly wear-resistant and heat-resistant surfaces, e.g. of valve seats on valve cones of combustion engines
US3304402A (en) * 1963-11-18 1967-02-14 Metco Inc Plasma flame powder spray gun
US3676638A (en) * 1971-01-25 1972-07-11 Sealectro Corp Plasma spray device and method
US3823302A (en) * 1972-01-03 1974-07-09 Geotel Inc Apparatus and method for plasma spraying
CH593754A5 (en) * 1976-01-15 1977-12-15 Castolin Sa
SE440463B (en) * 1977-04-04 1985-08-05 Union Carbide Corp HARD WELDED METAL SURFACE AND SETS AND MEANS TO MAKE IT
US4262034A (en) * 1979-10-30 1981-04-14 Armotek Industries, Inc. Methods and apparatus for applying wear resistant coatings to roto-gravure cylinders
DE3013076C2 (en) * 1980-04-03 1983-10-13 Daimler-Benz Ag, 7000 Stuttgart Blade for an adjustable turbine inlet guide grille
US4370538A (en) * 1980-05-23 1983-01-25 Browning Engineering Corporation Method and apparatus for ultra high velocity dual stream metal flame spraying

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB718866A (en) * 1952-04-01 1954-11-24 Air Reduction Improvements in method of hard surfacing
GB778785A (en) * 1954-02-18 1957-07-10 Union Carbide & Carbon Corp Method of applying hard-facing metals
GB1293229A (en) * 1970-05-01 1972-10-18 North American Rockwell Plasma generating method and means
GB1585207A (en) * 1976-10-28 1981-02-25 Eaton Corp Plasma arc torch
GB2026478A (en) * 1978-06-26 1980-02-06 Dynamit Nobel Ag Process for producing alkali metal salts of aryl pyruvic acids
GB2096515A (en) * 1981-04-09 1982-10-20 Carrier Corp Pulsed direct current arc welding

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015181075A1 (en) * 2014-05-31 2015-12-03 Element Six Gmbh Thermal spray assembly and method for using it
WO2015181076A1 (en) * 2014-05-31 2015-12-03 Element Six Gmbh Thermal spray assembly and method for using it
US9789501B2 (en) 2014-05-31 2017-10-17 Element Six Gmbh Thermal spray assembly and method for using it
US9815075B2 (en) 2014-05-31 2017-11-14 Element Six Gmbh Thermal spray assembly and method for using it

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GB2148768B (en) 1987-07-15
GB8426689D0 (en) 1984-11-28
DE3438439A1 (en) 1985-05-09
US4621183A (en) 1986-11-04

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